In an electromagnet having an armature, in particular for use in a solenoid valve, which includes a solenoid coil, a magnet core which passes through the solenoid coil and has at least one pole face, an armature which is supported perpendicularly to the at least one pole face of the magnet core so as to be able to slide and has an armature plate facing the pole face and an armature pin that projects from the armature plate and is supported so as to be able to slide and rotate, and an adjusting arrangement that is formed on the electromagnet and/or on the armature and adjust the armature plate to a predetermined rotational position, it is proposed that at least one first cutout which is radially offset from the armature pin and formed in the armature plate, and at least one second cutout which is situated in the at least one pole face of the magnet core and assigned to the first cutout, be provided as adjusting arrangement; the second cutout magnetically interacting with the first cutout in response to the solenoid coil being acted upon by a current, such that the armature plate is adjusted to the predetermined rotational position.
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1. An electromagnet, comprising:
a solenoid coil; a magnet core that passes through the solenoid coil and that has at least one pole face; an armature that is supported perpendicularly to the at least one pole face of the magnet core so as to be able to slide; an armature plate; an armature pin that projects from the armature plate and that is supported so as to be able to slide and rotate, the armature plate facing the at least one pole face and the armature pin; and an adjusting arrangement formed on at least one of the electromagnet and the armature and for adjusting the armature plate to a predetermined rotational position, wherein: the adjusting arrangement includes: at least one first cutout that is radially offset from the armature pin and formed in the armature plate, and at least one second cutout that is situated in the least one pole face and assigned to the at least one first cutout, and the at least one second cutout magnetically interacts with the at least one first cutout in response to the solenoid coil being acted upon by a current, such that the armature plate is adjusted to the predetermined rotational position. 9. A solenoid valve for a fuel-injection system, comprising:
an electromagnet, including: a solenoid coil; a magnet core that passes through the solenoid coil and that has at least one pole face; an armature that is supported perpendicularly to the at least one pole face of the magnet core so as to be able to slide; an armature plate; an armature pin that projects from the armature plate and that is supported so as to be able to slide and rotate, the armature plate facing the at least one pole face and the armature pin; and an adjusting arrangement formed on at least one of the electromagnet and the armature and for adjusting the armature plate to a predetermined rotational position, wherein: the adjusting arrangement includes: at least one first cutout that is radially offset from the armature pin and formed in the armature plate, and at least one second cutout that is situated in the least one pole face and assigned to the at least one first cutout, and the at least one second cutout magnetically interacts with the at least one first cutout in response to the solenoid coil being acted upon by a current, such that the armature plate is adjusted to the predetermined rotational position. 2. The electromagnet as recited in
the electromagnet is for use in a solenoid valve.
3. The electromagnet as recited in
a first distance of two inner-wall segments of the at least one first cutout approximately corresponds to a second distance of two inner-wall segments of the at least one second cutout, the two inner-wall segments of the at least one first cutout are diametrically opposed in a circumferential direction, and the two inner-wall segments of the at least one second cutout are diametrically opposed in a same direction.
4. The electromagnet as recited in
the at least one second cutout is at least partially situated inside a projection of the at least one first cutout in a sliding direction of the armature.
5. The electromagnet as recited in
the at least one first cutout includes two first cutouts that are diametrically opposed with respect to an axis of the armature pin, and the at least one second cutout includes two second cutouts that are assigned to the two first cutouts and are diametrically opposed with respect to the axis of the armature pin.
6. The electromagnet as recited in
in the predetermined rotational position of the armature plate, electrical connector elements of the solenoid coil pass from a side of the armature plate opposite to the solenoid coil, through an opening of the armature plate, without touching the armature plate.
7. The electromagnet as recited in
the at least one first cutout includes a plurality of first cutouts, the at least one second cutout includes a plurality of second cutouts, the at least one pole-face includes a plurality of pole face segments, a number and a circumferential length of the first cutouts are equal to a number and a circumferential length of the pole-face segments, the pole face segments separate the first cutouts from each other, and the magnet core includes a corresponding number of the second cutouts possessing the same circumferential length.
8. The electromagnet as recited in
the at least one first cutout includes a plurality of first cutouts, the at least one second cutout includes a plurality of second cutouts, a number and a circumferential length of the first cutouts and of the second cutouts are adjusted to a magnitude of a restoring force.
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The present invention relates to an electromagnet having an armature.
Known electromagnets having an armature are used, for example, in solenoid valves of pressure-regulating valves for injection systems of internal combustion engines. Such solenoid valves have electrical connector elements, which are led from a side of the armature opposite the electromagnet, through an opening of the armature plate, and are contacted to the solenoid coil. In order to prevent the connector elements from coming in contact with the inner wall of the armature-plate opening upon activation of the electromagnet, and impairing the movement of the armature plate through friction, the known electromagnets have mechanical adjusting arrangement in the form of a guide pin and a groove in the armature plate that interacts with the guide pin, the adjusting arrangement adjusting the armature plate to a predetermined angle of rotation and preventing the armature plate from rubbing against the electrical connector elements of the solenoid coil. However, it is disadvantageous that the mechanical adjusting arrangement can impair the movement of the armature.
The present invention's electromagnet having an armature eliminates the disadvantages associated with the use of mechanical adjusting arrangement. When a current acts on the solenoid coil, at least one cutout in the armature plate and a second opening in the pole face of the magnet core, which is assigned to the first opening, allow magnetic forces to adjust the armature plate to a predetermined rotational position, in which, for example, the connector elements pass through a cutout of the armature plate without touching it. Therefore, one may advantageously dispense with the design of mechanical adjusting arrangement that are expensive to manufacture. The stray magnetic flux in the region between the inner-wall segments of the at least one cutout and the at least one second cutout advantageously creates a frictionless design of the armature plate and the armature. In the case of a minimal rotation of the armature plate about the armature pin, restoring forces, which act on the armature plate and drive the armature back into its predetermined rotational position, result from the nonuniformity of the magnetic field.
The present invention introduced here may advantageously be used in pressure-regulating valves, in order to prevent frictional losses of the armature and impairment of the closing operation of the solenoid valve. In addition, the present invention may also be used in solenoid valves for injection valves of internal combustion engines, where the armature is adjusted in order to, for example, keep the cross-section of the fuel discharge channels running through cutouts of the armature from narrowing in response to rotation of the armature. However, the present invention is in no way limited to use in solenoid valves, and may be used in all electromagnets having an armature, where an armature plate, which is supported so as to be able to slide and rotate, has to be adjusted to a preferred angular position.
As is apparent from
An exemplary embodiment of the present invention is represented in
A cup-shaped housing part of a pressure-regulating valve is represented in FIG. 4 and FIG. 5.
When the solenoid coil is inserted into recess 11, inner wall 23 forms a segment of the magnet core 2, which passes through the coil and is connected to an outer wall segment 24 of the magnet core by a bottom plate 25, the outer wall segment encircling the coil. In this context, the two surfaces 21, 22 form two pole faces of magnet core 2, so that the magnetic circuit is closed by an armature plate 31 placed on the two pole faces 21, 22. As can be seen most effectively in
As can be easily seen in FIG. 6 and
In the exemplary embodiment depicted up to this point, the armature plate and the pole face of the magnet core each have two cutouts. Another exemplary embodiment may provide for the number of first cutouts in the armature plate and second cutouts in the pole face of the magnet core being increased to the point where, regardless of the starting position of the armature plate, the magnetic adjustment brought about in response to switching on the electromagnet always adjusts to a preferred rotational position, in which the first cutouts and the second cutouts assigned to the first lots are diametrically opposed. In particular, the number and circumferential length of first cutouts 33 of armature plate 31 may equal the number and circumferential length a of the pole-face segments of armature plate 31, which separate the first cutouts from each other. A corresponding number of second cutouts 27 having the same circumferential length (b=a) is then provided in the magnet core. Such a design of the armature plate and the magnet core is particularly suitable for solenoid valves, in which no connector elements pass through the armature plate.
The number of diametrically opposed cutouts is proportional to adjusting force F of the armature plate. This number may therefore be selected to yield the magnitude of the restoring force F required in the individual case.
Although the present invention is represented here, using a pressure-regulating valve as an example, it may also be used in other solenoid valves. For example, it is conceivable to use the present invention in solenoid valves of injection valves for injection systems, in order to prevent the cross-section of the outlet passages, which are provided in the armature plate for discharging fuel, from becoming smaller due to a rotation of the armature plate. However, the operating principle of the electromagnet and armature plate represented here is not limited to use in solenoid valves, but may advantageously be used in all electromagnets, where it is useful to adjust an armature plate supported so as to be able to slide and rotate, to a preferred rotational position.
Koch-Groeber, Hermann, Stoehr, Rainer, De Cosmo, Michele, Pacucci, Nicola, Vosahlo, Petr
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9410522, | Jun 08 2012 | Robert Bosch GmbH | Pressure control valve |
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Sep 19 2002 | STOEHR, RAINER | Robert Bosch GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013816 | /0024 | |
Sep 27 2002 | KOCH-GROEBER, HERMANN | Robert Bosch GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013816 | /0024 | |
Nov 01 2002 | VOSAHLO, PETR | Robert Bosch GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013816 | /0024 | |
Nov 06 2002 | PACUCCI, NICOLA | Robert Bosch GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013816 | /0024 | |
Dec 18 2002 | DE COSMO, MICHELE | Robert Bosch GmbH | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 013816 | /0024 | |
Feb 25 2003 | Robert Bosch GmbH | (assignment on the face of the patent) | / |
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